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  4. Modeling Hydraulic Transport and Anaerobic Uptake by PAOs and GAOs During Wastewater Feeding in EBPR Granular Sludge Reactors
 
research article

Modeling Hydraulic Transport and Anaerobic Uptake by PAOs and GAOs During Wastewater Feeding in EBPR Granular Sludge Reactors

Weissbrodt, David G.  
•
Holliger, Christof  
•
Morgenroth, Eberhard
2017
Biotechnology and Bioengineering

New-generation bioprocesses using granular sludge aim for a high-rate removal of nutrients from wastewater with low footprint. Achieving enhanced biological phosphorus removal (EBPR) relies on the design of sludge beds and wastewater feeding conditions to optimally load the biomass and to select for polyphosphate- (PAOs) over glycogen-accumulating organisms (GAOs) and over other heterotrophs. A hydraulic–metabolic mathematical model was developed to elucidate the impact of hydraulic transport patterns and environmental conditions on the PAO/GAO competition during up-flow feeding through an EBPR granular sludge bed. Tracer experiments highlighted plug-flow regimes with dispersion under both rapid and slow feeding. Non-turbulent regimes (Rebed<<103) promote a safe implementation of simultaneous fill/draw. Feeding time, pH, and temperature significantly impacted bacterial competition for carbon uptake under anaerobic slow feeding. Feeding duration should be designed to avoid full depletion of intracellular storage polymers within static granules. PAOs bear twice longer feeding than GAOs by using both polyphosphate and glycogen hydrolysis to sustain anaerobic C-uptake. Alkaline conditions (pH 7.25–8.0) by, e.g., dosing lime in the feed select for PAOs independently of temperature (1030C). A twice higher bed is required for full anaerobic conversions at 10 rather than 20C. Biosystem responses for anaerobic C-uptake can be anticipated using the model toward designing robust anaerobic selectors to manage the microbial resource in EBPR granular sludge.

  • Details
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Type
research article
DOI
10.1002/bit.26295
Web of Science ID

WOS:000404130200006

Author(s)
Weissbrodt, David G.  
Holliger, Christof  
Morgenroth, Eberhard
Date Issued

2017

Publisher

Wiley-Blackwell

Published in
Biotechnology and Bioengineering
Volume

114

Issue

8

Start page

1688

End page

1702

Subjects

EBPR

•

aerobic granular sludge

•

system analysis and mathematical modeling

•

hydraulic-metabolic model

•

feeding and environmental impacts

•

PAO

•

GAO selection

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
LBE  
Available on Infoscience
June 15, 2017
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/138459
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